Large-scale synthesis of CuS nanoparticles for photothermal materials using high-concentration Cu complex ion precursor

被引:8
作者
Jeon, Hee Yeon [1 ]
Ryu, Cheol-Hui [1 ]
Han, Seungheon [1 ]
Lee, Dong Hoon [1 ]
Byun, Jongmin [1 ,2 ,3 ]
Lee, Young-In [1 ,2 ,3 ]
机构
[1] Seoul Natl Univ Sci & Technol, Dept Mat Sci & Engn, Seoul, South Korea
[2] Seoul Natl Univ Sci & Technol, Inst Powder Technol, Seoul, South Korea
[3] Seoul Natl Univ Sci & Technol, Dept Mat Sci & Engn, 232 Gongneung-Ro, Seoul 01811, South Korea
基金
新加坡国家研究基金会;
关键词
CuS nanoparticles; large scale; metal complex ion precursor; photothermal material; COPPER SULFIDE NANORODS;
D O I
10.1111/jace.19248
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Copper sulfide (CuS), a copper-deficient p-type semiconductor material, has been widely utilized due to its unique optical properties, low toxicity, and cost-effectiveness. Although many studies have been conducted on synthesizing CuS nanoparticles, harsh synthetic conditions and low yield must be solved. This study presents a new methodology that can synthesize CuS nanoparticles in large quantities at room temperature and pressure using high-concentration Cu complex ion precursors. This methodology is based on the theory that the critical nucleus radius and the critical nucleation free energy decrease as the concentration of the precursor increases to synthesize a large number of nanoparticles by applying low energy. In addition, it is possible to minimize the aggregation of nanoparticles, which is a problem of nanoparticles synthesized at a high precursor concentration through complex ions in the solution. We synthesized nanoparticles by controlling the precursor concentration from 0.1 to 2.5 M to confirm the effect of the precursor concentration on the size, shape, and yield of nanoparticles. As the precursor concentration increased, the particle size decreased, and the yield improved. The CuS nanoparticles synthesized at the highest concentration had a size of about 17 nm without a strong agglomeration and a yield of about 213.9 g/L. Furthermore, the nanoparticles showed excellent photothermal performance due to their high near-infrared absorption. When about 0.1 g of the nanoparticles were irradiated with a Xenon lamp and an 808 nm laser, the maximum temperatures and rising rates were 53.7 degrees C and 172.1 degrees C and 13.8 degrees C/mg and 33 degrees C/mg, respectively. The excellent photothermal properties of CuS nanoparticles suggest the potential of this material for various applications.
引用
收藏
页码:7278 / 7287
页数:10
相关论文
共 35 条
[21]   Phase controllable synthesis of CuS nanoparticles by chemical co-precipitation method: Effect of copper precursors on the properties of CuS [J].
Pejjai, Babu ;
Reddivari, Muniramaiah ;
Kotte, Tulasi Ramakrishna Reddy .
MATERIALS CHEMISTRY AND PHYSICS, 2020, 239
[22]   Hollow Copper Sulfide Nanoparticle-Mediated Transdermal Drug Delivery [J].
Ramadan, Samy ;
Guo, Liangran ;
Li, Yajuan ;
Yan, Bingfang ;
Lu, Wei .
SMALL, 2012, 8 (20) :3143-3150
[23]   Generalized One-Pot Synthesis of Copper Sulfide, Selenide-Sulfide, and Telluride-Sulfide Nanoparticles [J].
Saldanha, Pearl L. ;
Brescia, Rosaria ;
Prato, Mirko ;
Li, Hongbo ;
Povia, Mauro ;
Manna, Liberato ;
Lesnyak, Vladimir .
CHEMISTRY OF MATERIALS, 2014, 26 (03) :1442-1449
[24]   A simple way of synthesizing single-crystalline semiconducting copper sulfide nanorods by using ultrasonication during template-assisted electrodeposition [J].
Singh, Krishna V. ;
Martinez-Morales, Alfredo A. ;
Andavan, G. T. Senthil ;
Bozhilov, Krassimir N. ;
Ozkan, Mihrimah .
CHEMISTRY OF MATERIALS, 2007, 19 (10) :2446-2454
[25]   Diversified copper sulfide (Cu2-xS) micro-/nanostructures: a comprehensive review on synthesis, modifications and applications [J].
Sun, Shaodong ;
Li, Pengju ;
Liang, Shuhua ;
Yang, Zhimao .
NANOSCALE, 2017, 9 (32) :11357-11404
[26]   Copper Sulfide-Based Plasmonic Photothermal Membrane for High-Efficiency Solar Vapor Generation [J].
Tao, Fujun ;
Zhang, Yuliang ;
Yin, Kuan ;
Cao, Shengjia ;
Chang, Xueting ;
Lei, Yanhua ;
Wang, Dong Sheng ;
Fan, Runhua ;
Dong, Lihua ;
Yin, Yansheng ;
Chen, Xiaobo .
ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (41) :35154-35163
[27]   Preparation of CuS/polyvinyl alcohol-chitosan nanocomposites with photocatalysis activity and antibacterial behavior against G plus /G- bacteria [J].
Wang, Guilin ;
Fakhri, Ali .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2020, 155 (155) :36-41
[28]   Formation of single-crystalline CuS nanoplates vertically standing on flat substrate [J].
Wang, Ke-Ji ;
Li, Guo-Dong ;
Li, Ji-Xue ;
Wang, Qun ;
Chen, Jie-Sheng .
CRYSTAL GROWTH & DESIGN, 2007, 7 (11) :2265-2267
[29]   Detection of human immunoglobulin G by label-free electrochemical immunoassay modified with ultralong CuS nanowires [J].
Wang, Ning ;
Gao, Caizhen ;
Han, Yu ;
Huang, Xiaomin ;
Xu, Ying ;
Cao, Xia .
JOURNAL OF MATERIALS CHEMISTRY B, 2015, 3 (16) :3254-3259
[30]   Large scale synthesis of uniform CuS nanotubes in ethylene glycol by a sacrificial templating method under mild conditions [J].
Wu, Chunyan ;
Yu, Shu-Hong ;
Chen, Shaofeng ;
Liu, Guannan ;
Liu, Bianhua .
JOURNAL OF MATERIALS CHEMISTRY, 2006, 16 (32) :3326-3331